作者
Charalampos Siristatidis, Paraskevi Vogiatzi, Abraham Pouliakis, Marialenna Trivella, Nikolaos Papantoniou, Stefano Bettocchi
发表日期
2016/7/1
期刊
in vivo
卷号
30
期号
4
页码范围
507-512
出版商
International Institute of Anticancer Research
简介
Aim
To propose a functional in vitro fertilization (IVF) prediction model to assist clinicians in tailoring personalized treatment of subfertile couples and improve assisted reproduction outcome.
Materials and Methods
Construction and evaluation of an enhanced web-based system with a novel Artificial Neural Network (ANN) architecture and conformed input and output parameters according to the clinical and bibliographical standards, driven by a complete data set and “trained” by a network expert in an IVF setting.
Results
The system is capable to act as a routine information technology platform for the IVF unit and is capable of recalling and evaluating a vast amount of information in a rapid and automated manner to provide an objective indication on the outcome of an artificial reproductive cycle.
Conclusion
ANNs are an exceptional candidate in providing the fertility specialist with numerical estimates to promote …
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